自上而下的预冷自然通风

T. Chenvidyakarn, A. Woods
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引用次数: 11

摘要

本文研究了礼堂或其他配备高层通风口和低层通风口的开放式空间的夏季预冷自然通风制度。冷水机组连接到高位通风口以提供预冷。外部的新鲜空气通过预冷系统的高层通风口进入室内。然后,预冷空气产生负(向下)浮力,它克服了居住者产生的正(向上)浮力,并将房间内的原始空气向下置换,并通过低层通风口排出。这导致了一种平衡,在这种平衡中,一个稳定的向下流动得以维持,在这种平衡中,房间在低于外部温度的温度下变得热均匀。建立了一个定量模型来描述这些情况,并成功地通过模拟实验室实验进行了测试。该模型表明,对于给定的房间几何形状和制冷机,存在可容纳的最大热负荷,同时通过向下通风保持通风和热舒适。我们展示了如何通过协调调整通风面积和冷却量来实现有效和节能的通风。实际应用:自上而下的预冷自然通风是一种高效节能的技术,可以在盛夏或温暖的气候条件下为各种现代建筑提供热通风舒适。目前的工作描述了该系统的工作原理,以及如何控制它以达到令人满意的舒适度和能源效率。
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Top-down precooled natural ventilation
This paper studies the summertime regime of precooled natural ventilation of an auditorium or other occupied open-plan space equipped with a high-level vent and a low-level vent. A chiller unit is connected to the high-level vent to provide precooling. Fresh air from the exterior comes into the room through the high-level vent passing through the precooling system. Precooled air then produces negative (downward) buoyancy, which overcomes positive (upward) buoyancy produced by the occupants, and displaces original air in the room downwards and out through the low-level vent. This leads to an equilibrium in which a steady downflow is maintained, and in which the room becomes thermally uniform at a temperature below that of the exterior. A quantitative model is developed to describe these conditions and successfully tested with analogue laboratory experiments. The model shows that for a given room geometry and chiller, there is a maximum heat load which can be accommodated while maintaining ventilation and thermal comfort through downward ventilation. We show how effective and energy-efficient ventilation may be achieved through coordinated adjustment of the vent area and the amount of cooling. Practical application: Top-down precooled natural ventilation can be an effective and energy efficient technique for providing thermal and ventilation comfort in a wide range of modern buildings during high summer or in warm climates. The present work describes how the system works, and how it may be controlled to achieve satisfactory results in terms of comfort and energy efficiency.
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